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Multiscale modeling of solid stress and tumor cell invasion in response to dynamic mechanical microenvironment

机译:响应动态机械微环境的固体应激和肿瘤细胞侵袭的多尺度建模

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Mathematical models can provide a quantitatively sophisticated description of tumor cell (TC) behaviors under mechanical microenvironment and help us better understand the role of specific biophysical factors based on their influences on the TC behaviors. To this end, we propose an off-lattice cell-based multiscale mathematical model to describe the dynamic growth-induced solid stress during tumor progression and investigate the influence of the mechanical microenvironment on TC invasion. At the cellular level, cell-cell and cell-matrix interactive forces depend on the mechanical properties of the cells and the cancer-associated fibroblasts in the stroma, respectively. The constitutive relationship between the interactive forces and cell migrations obeys the Hooke's law and damping effects. At the tissue level, the integrated growth-induced forces caused by proliferating cells within the simulation region are balanced by the external forces applied by the surrounding host tissues. Then, the cell movements are calculated according to the Newton's second law of motion, and the morphology of TC invasion is updated. The simulation results reveal the continuous changes of the macroscopic mechanical forces due to the interactions among the structural components and the microscopic environmental factors. Moreover, the simulation results demonstrate the adverse effect of the stiffness of tumor tissue on tumor growth and invasion. A decrease in the stiffness of tumor and matrix can promote TCs to proliferate at a much faster rate and invade into the surrounding healthy tissue more easily, whereas an increase in the stiffness can lead to an aggressive morphology of tumor invasion. We envision that the proposed model can be served as a quantitative theoretical platform to study the underlying biophysical role of the mechanical microenvironmental factors during tumor invasion and metastasis.
机译:数学模型可以在机械微环境下提供肿瘤细胞(TC)行为的定量复杂描述,并帮助我们基于其对TC行为的影响来更好地了解特定生物物理因素的作用。为此,我们提出了一种基于晶格细胞的多尺度数学模型,以描述肿瘤进展期间动态生长诱导的固体应激,并研究机械微环境对TC侵袭的影响。在细胞水平,细胞 - 细胞和细胞基质交互力分别取决于细胞的机械性能和基质中的癌症相关成纤维细胞。互动力与细胞迁徙之间的构成关系遵守胡克定律和阻尼效应。在组织水平中,由仿真区域内的增殖细胞引起的综合生长引起的力由周围宿主组织施加的外力平衡。然后,根据牛顿的第二次运动法计算细胞运动,并且更新了TC入侵的形态。仿真结果揭示了由于结构部件之间的相互作用和微观环境因素而导致宏观机械力的连续变化。此外,仿真结果表明肿瘤组织刚度对肿瘤生长和侵袭的不利影响。肿瘤和基质刚度的降低可以促进TCS以更快的速率促进并更容易地侵入周围的健康组织,而刚度的增加会导致肿瘤侵袭的侵袭性形态。我们设想所提出的模型可以作为定量理论平台,以研究肿瘤侵袭和转移期间机械微环境因子的潜在生物物理作用。

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